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1.
Ternary System Potassium Azide – Strontium Azide – Water at 268 K The 268 K isotherm of the ternary system KN3? Sr(N3)2? H2O has been investigated by means of solubility measurements and x-ray methods. The following compounds were identified: KN3; K2Sr(N3)4 · 4 H2O (orthorhombic, a = 1898, b = 1101, c = 624 pm, space group Cmmm); stable mixed crystals KxSry(N3)4.69(H2O)6.62 with x = 2.08 to 1.34 and y = 1.30 to 1.67 (orthorhombic, a = 638 to 644, b = 1092 to 1082 and c = 627 to 623 pm, space group C222); metastable mixed crystals in the areas between stable mixed crystals and stoichiometric compounds; Sr(N3)2 · 5 H2O (orthorhombic, a = 669, b = 1058, c = 611 pm, space group C222); Sr(N3)2 · 4 H2O (orthorhombic, a = 643, b = 1096, c = 4396 pm).  相似文献   

2.
Synthesis and Characterization of Aquapentachloroplatinates(IV) – Structure of [K(18-crown-6)][PtCl5(H2O)] The crown ether complex of the aquapentachloroplatinic acid of the composition [H13O6][PtCl5(H4O2)] · 2(18-cr-6) ( 2 ) reacts with K2CO3 and [NnBu4]OH in aqueous solution to give [K(18-cr-6)][PtCl5(H2O)] ( 5 a ) and [NnBu4][PtCl5(H2O)] · 1/2 (18-cr-6) · H2O ( 5 b ), respectively. Both compounds were characterized by microanalysis, vibrational (IR, Raman) and NMR (1H, 13C, 195Pt) spectroscopy. The X-ray structure analysis of 5 a (orthorhombic, pnma; a = 16,550(4), b = 18,044(3), c = 7,415(1) Å; Z = 4; R1 = 0,0183; wR2 = 0,0414) reveals that the crystal is threaded by chains built up of [PtCl5(H2O)]? and [K(18-cr-6)]+ units. There are tight K …? Cl contacts (d(K? Cl1)) = 3,0881(9) Å and OW? H? Ocr hydrogen bridges (d(O1 …? O2) = 2,806(3) Å) between these units. The coordination polyhedron [PtCl5O] has approximately C4v symmetry.  相似文献   

3.
Compounds in the System CsN3? Sr(N3)2? H2O Three new compounds between cesium azide and strontium azide have been crystalized from aqueous solutions at room temperature. The lattice parameters wee investigated by means of x-ray single crystal techniques, the indexed powder patterns are listed. CsSr(N3)3 crystalizes monoclinic: a = 1 589, b = 1 015, c = 904 pm, β = 90.47°, N = 8, space group P21/c. Cs2Sr(N3)4 crystallizes orthorhombic: a = 1 263, b = 1 454, c = 1 183 pm, N = 8, space group Cmca. Cs2Sr(N3)4 · 4 H2O crystalizes orthorhombic: a = 2 061, b = 1 114, c = 637 pm, N = 4, space group Ccca  相似文献   

4.
The rate constant k4 has been measured at 268°, 298°, and 334° K for the reaction CH2O + 2OH → CO + 2H2O relative to that for OH + OH (k2) by competition experiments in a discharge flow tube using mass-spectrometric analysis. Based on k2 = 2.24 × 10?12cm3/molec·sec at 298°K and E2 = 4 kJ/mol, k4 = (6.5 ± 1.5) × 10?12cm3/molec·sec at 298°K and E4 = (6 ± 2)kJ/mol.  相似文献   

5.
Preparation and Characterization of Calcium Hydrogen Sulfate CaSO4 · H2SO4 was identified as calcium hydrogen sulfate whereas CaSO4 · 3 H2SO4 is an adduct of CaSO4 with H2SO4. Depending on the excessive amount of H2SO4 both compounds exist side by side up to a temperature of 343 K, whereas above this temperature only Ca(HSO4)2 is stable. The DTA curve of Ca(HSO4)2 shows two maxima at 488 K and 523 K, according to the separation of H2O under formation of pyrosulfate and decomposition of this compound under elimination of SO3. In comparison with other hydrogen sulfates Ca(HSO4)2 shows a considerable increased O? H distances. The d-values of Ca(HSO4)2 are calculated and represented.  相似文献   

6.
Polysulfonyl Amines. XL. Preparation of Silver(I) Disulfonylamide Acetonitrile Complexes. Characterization of Tetraacetonitrilesilver(I) bis(dimesylamido)argentate(I) and (1,1,3,3-Tetraoxo-1,3,2-benzodithiazolido)acetonitrilesilver(I) by X-Ray Diffractometry and Thermal Analysis The following silver(I) disulfonylamides were prepared for the first time or by improved procedures: AgN(SO2CH3)2 ( 2a ); AgN(SO2C6H4-4-X)2 with X = F ( 2b ), Cl ( 2c ), Br ( 2d ), CH3 ( 2e ); silver(I) 1,2-benzenedisulfonimide AgN(SO2)2C6H4 ( 2f ). With acetonitrile, the salts 2a to 2e form (1/2) complexes AgN(SO2R)· 2 CH3CN ( 4a to 4e ), whereas 2f gives the (1/1) complex AgN(SO2)2C6H · CH3CN ( 4f ). The crystallographic data (at - 95°C) for the title compounds 4a and 4f are: 4a , space group C2/c, a = 1 967.6(4), b = 562.2(1), c = 2 353.0(5) pm, β = 102.21(2)°, V = 2.5440 nm3, Z = 4, Dx = 1.891 Mg m?3; 4f , space group P21/m, a = 741.5(3), b = 980.4(4), c = 756.6(3) pm, β = 99.28(2)°, V = 0.5428 nm3, Z = 2, Dx = 2.246 Mg m?3. 4a forms an ionic crystal [Ag(NCCH3)4][Ag{N(SO2CH3)2}2]? with a tetrahedrally coordinated silver atom (lying on a twofold axis) in the cation (225.3/225.7 pm for the two independent Ag? N distances, N? Ag? N 106.2—114.5°) and a linear-dicoordinated silver atom in the centrosymmetric anion (Ag? N 213.9 pm, two intraionic secondary Ag…O contacts 303.4 pm). 4f consists of uncharged molecules [C6H4(SO2)2N1AgN2CCH3] with crystallographic mirror symmetry (Ag? N1 218.8, Ag? N2 216.1 pm, N1? Ag? N2 174.3°), associated into strands by intermolecular secondary silver-oxygen contacts (Ag…O 273.8 pm, O…Ag…O 175.6, N? Ag…O 91.9/88.2°). The thermochemical behaviour of 4f was investigated using thermogravimetry, differential scanning calorimetry (DSC), time- and temperature-resolved X-ray diffractometry (TXRD), and solution calorimetry. The desolvation process occurs in the temperature range from 60 to 200°C and appears to be complex, although no crystalline intermediate could be detected. The desolvation enthalpy at 298 K was found to be + 26.8(4) kJ mol?1. 4a is desolvated in two steps at - 15 to 60°C and 60 to 95°C (DSC), suggesting the formation of AgN(SO2CH3) · CH3CN as an intermediate.  相似文献   

7.
The equilibrium between fluoral in dichloromethane solution and live condensed liquid polyfluoral has been investigated between 22 and 43°C. Equilibrium monomer concentrations gave: ΔHac°(298 K) = -50-8 ± 2·3 kJ mol?1 and ΔSsc° (298 K) = -142·7 ± 7·4 J K-1 mol-1. With the aid of calibration and monomer vaporization data, thermodynamic values for the polymerization of liquid monomer to liquid polymer were also calculated: ΔHtc° (298 K) = -47 ± 3 kJ mol-1 and ΔS1e° (298 K) = -97 ± 10 J K-1 mol-1.  相似文献   

8.
The solid‐liquid equilibria in the quinary system Na+, K+//Cl?, SO2?4, B4O2?7‐H2O at 298 K had been studied experimentally using the method of isothermal solution saturation. Solubilities and densities of the solution of the quinary system were measured experimentally. Based on the experimental data, the dry‐salt phase diagram and water content diagram of the quinary system were constructed, respectively. In the equilibrium diagram of the quinary system Na+, K+//Cl?, SO2?4, B4O2?7‐H2O at 298 K, there are five invariant points F1, F2, F3, F4 and F5; eleven univariant curves E1F1, E2F2, E3F3, E4F5, E5F2, E6F4, E7F5, F1F4, F2F4 F1F3 and F3F5, and seven fields of crystallization saturated with Na2B4O7 corresponding to Na2SO4, Na2SO4·10H2O, Na2SO4·3K2SO4 (Gla), K2SO4, K2B4O7·4H2O, NaCl and KCl. The experimental results show that Na2SO4·3K2SO4 (Gla), K2SO4 and K2B4O7·4H2O have bigger crystallization fields than other salts in the quinary system Na+, K+//Cl?, SO2?4, B4O2?7‐H2O at 298 K.  相似文献   

9.
Electron pulse radiolysis at ?298°K of 2 atm H2 containing 5 torr O2 produces HO2 free radical whose disappearance by reaction (1), HO2 + HO2 →H2O2 + O2, is monitored by kinetic spectrophotometry at 230.5 nm. Using a literature value for the HO2 absorption cross section, the values k1 = 2.5×10?12 cm3/molec·sec, which is in reasonable agreement with two earlier studies, and G(H) G(HO2) ?13 are obtained. In the presence of small amounts of added H2O or NH3, the observed second-order decay rate of the HO2 signal is found to increase by up to a factor of ?2.5. A proposed kinetic model quantitatively explains these data in terms of the formation of previously unpostulated 1:1 complexes, HO2 + H2O ? HO2·H2O (4a) and HO2 + NH3? HO2·NH3 (4b), which are more reactive than uncomplexed HO2 toward a second uncomplexed HO2 radical. The following equilibrium constants, which agree with independent theoretical calculations on these complexes, are derived from the data: 2×10?20?K4a?6.3 × 10?19 cm3/molec at 295°K and K4b = 3.4 × 10?18 cm3/molec at 298°K. Several deuterium isotope effects are also reported, including kH/kD = 2.8 for reaction (1). The atmospheric significance of these results is pointed out.  相似文献   

10.
3‐(4‐carboxyphenyl)‐1‐methyltriazene N‐oxide reacts with KOH in methanol/pyridine to give {K[O2C‐C6H4‐N(H)NN(CH3)O]·4H2O}n, Potassium‐3‐(4‐carboxylatophenyl)‐1‐methyltriazene N‐oxide). The terminal carboxylato group of the anion does not interact with the cation. In the crystal lattice of {K(C8H8N3O3)·4H2O}n each three of the four water molecules interact with two potassium cations, every K+ ion being the centre of six bridging K···O interactions. Potassium cations interact further with the terminal N‐oxigen atom of single [C8H8N3O3]? anions achieving two parallel {C8H8N3O3?K+}n chains, which are linked through water molecules. The resulting polymeric, one‐dimensional chain, is operated by a screw axis 21 parallel to the crystallographic direction [010], along and equidistant to the K+ centres. The coordination of the K+ centres involves a distortion of the boat conformation of elementary sulfur (S8) with the ideal C2v symmetry.  相似文献   

11.
Concerning Potassium Arsenites in the Three-Component System K2O? As2O3? H2O. Preparation and Crystal Structure of K3(HAs2O4) (As2O4) · 3/2 H2O The phase K3(HAs2O4)(As2O4) · 3/2 H2O has been identified in the system K2O? As2O3? H2O at 40°C and characterized by X-ray structural analysis. In the crystal lattice independent polymetaarsenite anions, [HAs2O4?]n and [As2O42?]n, adopt parallel zweier single chains.  相似文献   

12.
On the Existence of the Compound K2TiOF4: Pyrohydrolytic Degradation of K2TiF6 and Thermochemical Behaviour of K2Ti(O2)F4 · H2O In an attempt to prepare K2TiOF4 we used the following three ways; solid-state reaction of K2TiF6, TiO2, and KF, pyrohydrolysis of K2TiF6 at 450 and 550°C, and thermal decomposition of K2Ti(O2)F4 · H2O. In each case the reaction products were mixtures of several compounds, always containing the kryolith-phase K2+xTiOxF6?x and TiO2. At 130°C K2Ti(O2)F4 · H2O forms K2Ti(O2)F4 by loss of H2O, and at 230°C the peroxogroup decomposes, yielding K2TiOF4 as main product. K2TiOF4 crystallizes tetragonally with the following lattice parameters: a = 769.7(1) and c = 1153.9(2)pm. The i.r. spectrum shows an absorption band at 810 cm?1, pointing to infinite chains of ? Ti? O? Ti? O? .  相似文献   

13.
Rate coefficients for proton transfer reactions of the type XH+ + H2O → H3O+ + X where X = H2, CH4, CO, N2, CO2 and N2O and the type H2O + X? → XH + OH? where X = H, NH2 and C2H5NH have been measured at 297 K using the flowing afterglow technique. The results compare favourably with the predictions of the average-dipole-orientation theory. A trend is observed with exothermicity on a plot of (kexp/kADO)298 K versus ?ΔH298 K0. The question is raised whether the relatively low probability observed for slightly exothermic proton transfer reactions is a consequence of reaction mechanism or results from the presence of a small activation energy barrier.  相似文献   

14.
A novel dinuclear nickel(II) complex Ni2(NO3)4(APTY)4 (1) (APTY?=?1,5-dimethyl-2-phenyl-4-{[(1E)-pyridine-4-ylmethylene]amino}-1,2-dihydro-3H-pyrazol-3-one), was synthesized by solvothermal reaction of Ni(NO3)2?·?6H2O with APTY in methanol at 353?K. The structure consists of centrosymmetric dimers resulting from octahedrally coordinated Ni atoms bridged by APTY ligands. Weak intermolecular interactions (C–H?···?N, C–H?···?O hydrogen bonding, C–H?···?π and π–π stacking interactions) are responsible for a supramolecular assembly of molecules in the lattice. Magnetic measurements over 1.8–300?K show weak antiferromagnetic coupling between Ni(II) ions with J?=?2.969?cm?1, g?=?2.280, θ?=??5.903.  相似文献   

15.
Crystals of [Ca(C3H2N3O3)(H2O)6]+ · (C3H2N3O3)? · H2O (I) are restudied by X-ray crystallography. The previous X-ray study is shown to be incorrect. The crystal structure of I (space group $P\bar 1$ , a = 6.503 Å, b = 10.830 Å, c = 11.824 Å, α = 103.58°, β = 92.64°, γ = 98.82°, Z = 2) is solved by a direct method and refined by the full-matrix least-squares method in the anisotropic approximation to R = 0.037 for 2792 independent reflections (CAD4 automated diffractometer, λMoK α radiation). In the [Ca(C3H2N3O3)(H2O)6]+ complex cation, the coordination polyhedron of the Ca atom is a strongly distorted octahedron with one additional vertex. The crystal of I contains a developed three-dimensional system of interionic (intermolecular) hydrogen bonds involving all H atoms.  相似文献   

16.
Synthesis and Characterization of Ca(HSO4)2 · 2 H2SO4 or H2[Ca(HSO4)4], respectively ?Ca(HSO4)2 · 2 H2SO4”? crystallizes from CaSO4 saturated hot H2SO4c below 310 K. With SOCl2 containing ether it is possible, to remove two moles H2SO4 and to prepare Ca(HSO4)2. ?Ca(HSO4)2 · 2 H2SO4”? shows two endothermal effects at Tp1 = 336 K and Tp2 = 477 K during the thermal analysis. Whereas Tp2 corresponds to the segregation of H2SO4 from Ca(HSO4)2, Tp1 is attributed to the loss of two moles H2SO4. These results are supported by x-ray heating measurements on single crystals. From oscillation and Weissenberg photographs with CuKα the unit cell was determined. In agreement with these parameters, the compound is to formulate as the complex acid H2[Ca(HSO4)4].  相似文献   

17.
Potassium pentafluorobismuthate(III), nitrate-chloride BiIII complexes MBiCl3NO3 (M=K, (NH2)2CNH2), sulfate-chloride BiIII complexes MBiCl2SO4 (M=K, Rb, NH4, (NH2(2CNH2), and BiIII complexonates with the anions of ethylenediaminetetraacetic acid M[Bi(edta)]2·nH2O (M=Mg, Ca, Ni, Cd) and nitrilotriacetic acid Bi(nta)·2H2O, and Bi(nta)·3thio·H2O (thio is thiourea) were studied by209Bi NQR spectroscopy. A second-order phase transition was observed in K2BiF5 at 100 K. The compounds Bi(nta)·2H2O, (NH2)2CNH2BiCl3NO3, and MBiCl2SO4 (M=K, NH4) are piezoelectrics. Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 11, pp. 2237–2240, November, 1998.  相似文献   

18.
Low-temperature heat capacities of octahydrated barium dihydroxide, Ba(OH)2·8H2O(s), were measured by a precision automated adiabatic calorimeter in the temperature range from T=78 to 370 K. An obvious endothermic process took place in the temperature range of 345-356 K. The peak in the heat capacity curve was correspondent to the sum of both the fusion and the first thermal decomposition or dehydration. The experimental molar heat capacifies in the temperature ranges of 78-345 K and 356-369 K were fitted to two polynomials. The peak temperature, molar enthalpy and entropy of the phase change have been determined to be (355.007±0.076) K, (73.506±0.011) kJ·ol^-1 and (207.140±0.074) J·K^-1·mol^-1, respectively, by three series of repeated heat capacity measurements in the temperature region of 298-370 K. The thermodynamic functions, (Hr-H298.15 k )and (Sr-S298.15k), of the compound have been calculated by the numerical integral of the two heat-eapacity polynomials. In addition, DSC and TG-DTG techniques were used for the further study of thermal behavior of the compound. The latent heat of the phase change became into a value larger than that of the normal compound because the melfing process of the compound must be accompanied by the thermal decomposition or dehydration of 71-120.  相似文献   

19.
The syntheses and crystal structures of the closely related but non-isostructural Cd2(C19H21N3O3F)4(H2O)2?·?4H2O (1) and Pb2(C19H21N3O3F)4?·?4H2O (2) are described, where C19H21N3O3F? is enrofloxacinate (enro). Both compounds contain centrosymmetric, binuclear, neutral complexes incorporating a central diamond-shaped M2O2 (M?=?Cd, Pb) structural unit. The Cd2+ coordination polyhedron in 1 is a CdO6 trigonal prism, including one coordinated water. The Pb2+ coordination polyhedron in 2 can be described as a very distorted square-based PbO5 pyramid, although two additional short Pb?···?O (<3.1?Å) contacts are also present. In the crystal of the cadmium complex, O–H?···?O hydrogen bonds lead to a layered structure. In the lead compound, O–H?···?O and O–H?···?N interactions lead to chains in the crystal. Crystal data: 1: C76H96Cd2F4N12O18, M r?=?1766.45, triclinic, P 1, a?=?12.185(2)?Å, b?=?12.306(3)?Å, c?=?14.826(3)?Å, α?=?68.15(3)°, β?=?70.28(3)°, γ?=?86.11(3)°, V?=?1938.2(7)?Å3, Z?=?1, T?=?298 K, R(F)?=?0.030, wR(F 2)?=?0.079. 2: C76H88F4N12O16Pb2, M r?=?1920.00, triclinic, P 1, a?=?12.0283(4)?Å, b?=?12.7465(4)?Å, c?=?13.0585(4)?Å, α?=?83.751(1)°, β?=?74.635(1)°, γ?=?81.502(1)°, V?=?1904.3(1)?Å3, Z?=?1, T?=?298?K, R(F)?=?0.021, wR(F 2)?=?0.049.  相似文献   

20.
On the Dicyanothiocyanatomercurates(II) of the Alkaline-earth Metals The reactions between Hg(CN)2 and M(NCS)2 · nH2O (M = Mg, Ca, Sr, Ba; n = 3, 4) in aqueous solutions lead to the compounds M[Hg(CN)2SCN]2 · 4 H2O. The compounds yielded by crystallization are characterized with x-ray, spectroscopic, and thermal methods. The crystal structures of Mg[Hg(CN)2SCN]2 · 4 H2O and Sr[Hg(CN)2SCN]2 · 4 H2O have been determined by x-ray structure analysis. These structures can be compared with the compounds M′Hg(CN)2SCN (M′ = K, Rb, Cs).  相似文献   

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